材料科学
异质结
铀
光催化
载流子
复合数
电场
光电子学
还原(数学)
极化(电化学)
萃取(化学)
纳米颗粒
复合材料
陶瓷
压电
化学工程
纳米技术
浓缩铀
工作(物理)
联轴节(管道)
可见光谱
纳米
作者
Teng He,Yanxin Jiang,Wei Wang,Jingjing Wang,Peng Liu,Ping Li,Duoqiang Pan,Qiaohui Fan
出处
期刊:Nano Research
[Springer Science+Business Media]
日期:2026-03-25
卷期号:19 (8): 94908657-94908657
标识
DOI:10.26599/nr.2026.94908657
摘要
Abstract Photocatalytic separation of uranium presents a promising approach for resource recovery, yet its efficiency remains limited by severe charge-carrier recombination. Integrating piezocatalysis with photocatalysis offers an attractive pathway to overcome this barrier. Herein, a Type-II CdS@BaTiO3 heterojunction was fabricated by growing CdS nanoparticles onto a BaTiO3 matrix, which enables efficient piezo-photocatalytic uranium extraction. The built-in electric field of the heterojunction, reinforced by the stirring-induced piezoelectric polarization of CdS@BaTiO3, drives directional charge migration and greatly enhances carrier separation. As a result, CdS@BaTiO3 achieved 98% uranium removal within 10 min under stirring and light irradiation, which was 2.5 and 8.3 times higher than those achieved by photocatalysis and piezocatalysis alone, respectively. The composite also delivers a high uranium separation capacity of 1893.2 mg·g−1, exceeding most previously reported piezo-photocatalytic uranium extraction systems. Mechanistic investigations identify superoxide radicals (·O2−) as the dominant reactive species responsible for U(VI) reduction and immobilization. This work demonstrates a promising water-flow-driven energy-coupling strategy for uranium extraction.
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